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Cytokine-mediated reversal of multidrug resistance
1Max-Delbrück-Center for Molecular Medicine, Robert-Rössle-Strasse 10, 13122, Berlin, Germany., ustein@mdc-berlin.de.
Abstract:
The occurrence of the multidrug resistance phenotype still represents a limiting factor for successful cancer chemotherapy. Numerous efforts have been made to develop strategies for reversal and/or modulation of this major therapy obstacle through targeting at different levels of intervention. The phenomenon of MDR is often associated with overexpression of resistance-associated genes. Since the classical type of MDR in human cancers is mainly mediated by the P-glycoprotein encoded by the multidrug resistance gene 1, mdr1, the majority of reversal approaches target the expression and/or function of the mdr1 gene/P-glycoprotein. Due to the fact that the multidrug phenotype always represents the net effect of a panel of resistance-associated genes/gene products, other resistance genes, e.g. those encoding the multidrug resistance-associated protein MRP or the lung resistance protein LRP, were included in the studies. Cytokines such as tumor necrosis factor alpha and interleukin-2 have been shown to modulate the MDR phenotype in different experimental settings in vitro and in vivo. Several studies have been performed to evaluate their potential as chemosensitizers of tumor cells in the context of a combined application of MDR-associated anticancer drugs like doxorubicin and vincristine with cytokines. Moreover, the capability of cytokines to modulate the expression of MDR-associated genes was demonstrated, either by external addition or by transduction of the respective cytokine gene. Knowledge of the combination effects of cytokines and cytostatics and its link to their MDR-modulating capacity may contribute to a more efficient and to a more individualized immuno-chemotherapy of human malignancies.
Insights
Multidrug resistance (MDR) in cancer chemotherapy can be modulated by cytokines. These immune signaling molecules may enhance chemotherapy effectiveness by targeting MDR-associated genes and P-glycoprotein.
Area of Science:
- Cancer Research
- Immunology
- Pharmacology
Background:
- Multidrug resistance (MDR) is a significant obstacle in cancer chemotherapy.
- MDR is often linked to the overexpression of specific genes, notably the multidrug resistance gene 1 (mdr1) encoding P-glycoprotein.
- Other resistance genes like MRP and LRP also contribute to the MDR phenotype.
Purpose of the Study:
- To investigate the potential of cytokines as chemosensitizers to overcome MDR.
- To explore the modulation of MDR-associated genes and P-glycoprotein by cytokines.
- To evaluate the combined effects of cytokines and conventional chemotherapy for improved cancer treatment.
Main Methods:
- In vitro and in vivo experimental models were used to study MDR modulation.
- Studies involved the combined application of anticancer drugs (doxorubicin, vincristine) with cytokines (TNF-alpha, IL-2).
- Cytokine gene transduction was employed to assess their impact on MDR-associated gene expression.
Main Results:
- Cytokines, including tumor necrosis factor alpha and interleukin-2, demonstrated the ability to modulate the MDR phenotype.
- Combined treatment with cytokines and cytostatics showed potential as chemosensitizers.
- Cytokines were shown to influence the expression of MDR-associated genes.
Conclusions:
- Cytokines can modulate multidrug resistance in cancer cells.
- Combining cytokines with chemotherapy may enhance treatment efficacy and personalize immuno-chemotherapy.
- Targeting MDR-associated genes with cytokines offers a promising strategy for overcoming chemotherapy resistance.
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